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丛枝菌根对番茄的定殖不会增加其从土壤中吸收金纳米材料的量。

Gold Nanomaterial Uptake from Soil Is Not Increased by Arbuscular Mycorrhizal Colonization of Solanum Lycopersicum (Tomato).

作者信息

Judy Jonathan D, Kirby Jason K, McLaughlin Mike J, Cavagnaro Timothy, Bertsch Paul M

机构信息

Commonwealth Science and Industry Research Organization (CSIRO) Land and Water, Waite Road, PMB 2, Urrbrae 5064, South Australia, Australia.

School of Agriculture, Food and Wine, University of Adelaide, Waite Campus, PMB 1, Glen Osmond 5064, South Australia, Australia.

出版信息

Nanomaterials (Basel). 2016 Apr 13;6(4):68. doi: 10.3390/nano6040068.

DOI:10.3390/nano6040068
PMID:28335196
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5302564/
Abstract

Bioaccumulation of engineered nanomaterials (ENMs) by plants has been demonstrated in numerous studies over the past 5-10 years. However, the overwhelming majority of these studies were conducted using hydroponic systems and the degree to which the addition of the biological and chemical components present in the soil might fundamentally alter the potential of plant bioaccumulation of ENMs is unclear. Here, we used two genotypes of (tomato), reduced mycorrhizal colonization (), a mutant which does not allow arbuscular mycorrhizal fungi (AMF) colonization, and its progenitor, 76R, to examine how colonization by AMF alters trends of gold ENM bioaccumulation from a natural soil. Gold was taken up and bioaccumulated by plants of both genotypes. Gold concentrations were significantly higher in the treatment although this was likely attributable to the large differences in biomass between the 76R and plants. Regardless, there was little evidence that AMF played a significant role in trafficking Au ENMs into the plants. Furthermore, despite very low NH₄NO₃ extractable Au concentrations, Au accumulated at the root-soil interface. Although this observation would seem to suggest that ENMs may have potential to influence this particularly biologically active and important soil compartment, we observed no evidence of this here, as the 76R plants developed a robust AMF symbiosis despite accumulation of Au ENMs at the rhizoplane.

摘要

在过去5到10年的众多研究中,已经证明了植物对工程纳米材料(ENMs)的生物累积。然而,这些研究绝大多数是使用水培系统进行的,土壤中存在的生物和化学成分的添加可能从根本上改变植物对ENMs生物累积潜力的程度尚不清楚。在这里,我们使用了两种基因型的番茄(Solanum lycopersicum)、降低菌根定殖率的rmc(reduced mycorrhizal colonization),一种不允许丛枝菌根真菌(AMF)定殖的突变体及其亲本76R,来研究AMF定殖如何改变天然土壤中纳米金ENM生物累积的趋势。两种基因型的植物都吸收并生物累积了金。rmc处理中的金浓度显著更高,尽管这可能归因于76R和rmc植物之间生物量的巨大差异。无论如何,几乎没有证据表明AMF在将金ENMs转运到植物中发挥了重要作用。此外,尽管NH₄NO₃可提取的金浓度非常低,但金在根 - 土界面累积。虽然这一观察结果似乎表明ENMs可能有潜力影响这个特别具有生物活性且重要的土壤区域,但我们在这里没有观察到相关证据,因为尽管金ENMs在根际平面累积,76R植物仍形成了强大的AMF共生关系。

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A mutant in Lycopersicon esculentum Mill. with highly reduced VA mycorrhizal colonization: isolation and preliminary characterisation.番茄(Lycopersicon esculentum Mill.)中一个菌根定殖显著降低的突变体:分离与初步鉴定
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Effects of silver sulfide nanomaterials on mycorrhizal colonization of tomato plants and soil microbial communities in biosolid-amended soil.
硫化银纳米材料对添加生物固体土壤中番茄植物菌根定殖和土壤微生物群落的影响。
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Nanomaterials in Biosolids Inhibit Nodulation, Shift Microbial Community Composition, and Result in Increased Metal Uptake Relative to Bulk/Dissolved Metals.生物固体中的纳米材料抑制结瘤,改变微生物群落组成,并导致相对于总金属/溶解金属的金属吸收增加。
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Fate of zinc oxide and silver nanoparticles in a pilot wastewater treatment plant and in processed biosolids.氧化锌和银纳米粒子在中试污水处理厂和处理生物固体中的命运。
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